Mechanical force-driven TNFα endocytosis governs stem cell homeostasis

Abstract Mesenchymal stem cells (MSCs) closely interact with the immune system, and they are known to secrete inflammatory cytokines in response to stress stimuli. The biological function of MSC-derived inflammatory cytokines remains elusive. Here, we reveal that even under physiological conditions,...

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Main Authors: Wenjing Yu, Chider Chen, Xiaoxing Kou, Bingdong Sui, Tingting Yu, Dawei Liu, Runci Wang, Jun Wang, Songtao Shi
Format: Article
Language:English
Published: Nature Publishing Group 2021-01-01
Series:Bone Research
Online Access:https://doi.org/10.1038/s41413-020-00117-x
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spelling doaj-0488af97fba6414db3633f079184723c2021-01-03T12:18:28ZengNature Publishing GroupBone Research2095-62312021-01-018111310.1038/s41413-020-00117-xMechanical force-driven TNFα endocytosis governs stem cell homeostasisWenjing Yu0Chider Chen1Xiaoxing Kou2Bingdong Sui3Tingting Yu4Dawei Liu5Runci Wang6Jun Wang7Songtao Shi8Department of Anatomy and Cell Biology, School of Dental Medicine, University of PennsylvaniaDepartment of Anatomy and Cell Biology, School of Dental Medicine, University of PennsylvaniaDepartment of Anatomy and Cell Biology, School of Dental Medicine, University of PennsylvaniaDepartment of Anatomy and Cell Biology, School of Dental Medicine, University of PennsylvaniaDepartment of Anatomy and Cell Biology, School of Dental Medicine, University of PennsylvaniaDepartment of Anatomy and Cell Biology, School of Dental Medicine, University of PennsylvaniaDepartment of Anatomy and Cell Biology, School of Dental Medicine, University of PennsylvaniaState Key Laboratory of Oral Diseases, National Clinical Research Center for Oral Diseases, West China Hospital of Stomatology, Sichuan UniversityDepartment of Anatomy and Cell Biology, School of Dental Medicine, University of PennsylvaniaAbstract Mesenchymal stem cells (MSCs) closely interact with the immune system, and they are known to secrete inflammatory cytokines in response to stress stimuli. The biological function of MSC-derived inflammatory cytokines remains elusive. Here, we reveal that even under physiological conditions, MSCs produce and release a low level of tumor necrosis factor alpha (TNFα), which is unexpectedly required for preserving the self-renewal and differentiation of MSCs via autocrine/paracrine signaling. Furthermore, TNFα critically maintains MSC function in vivo during bone homeostasis. Mechanistically, we unexpectedly discovered that physiological levels of TNFα safeguard MSC homeostasis in a receptor-independent manner through mechanical force-driven endocytosis and that endocytosed TNFα binds to mammalian target of rapamycin (mTOR) complex 2 and restricts mTOR signaling. Importantly, inhibition of mTOR signaling by rapamycin serves as an effective osteoanabolic therapeutic strategy to protect against TNFα deficiency and mechanical unloading. Collectively, these findings unravel the physiological framework of the dynamic TNFα shuttle-based mTOR equilibrium that governs MSC and bone homeostasis.https://doi.org/10.1038/s41413-020-00117-x
collection DOAJ
language English
format Article
sources DOAJ
author Wenjing Yu
Chider Chen
Xiaoxing Kou
Bingdong Sui
Tingting Yu
Dawei Liu
Runci Wang
Jun Wang
Songtao Shi
spellingShingle Wenjing Yu
Chider Chen
Xiaoxing Kou
Bingdong Sui
Tingting Yu
Dawei Liu
Runci Wang
Jun Wang
Songtao Shi
Mechanical force-driven TNFα endocytosis governs stem cell homeostasis
Bone Research
author_facet Wenjing Yu
Chider Chen
Xiaoxing Kou
Bingdong Sui
Tingting Yu
Dawei Liu
Runci Wang
Jun Wang
Songtao Shi
author_sort Wenjing Yu
title Mechanical force-driven TNFα endocytosis governs stem cell homeostasis
title_short Mechanical force-driven TNFα endocytosis governs stem cell homeostasis
title_full Mechanical force-driven TNFα endocytosis governs stem cell homeostasis
title_fullStr Mechanical force-driven TNFα endocytosis governs stem cell homeostasis
title_full_unstemmed Mechanical force-driven TNFα endocytosis governs stem cell homeostasis
title_sort mechanical force-driven tnfα endocytosis governs stem cell homeostasis
publisher Nature Publishing Group
series Bone Research
issn 2095-6231
publishDate 2021-01-01
description Abstract Mesenchymal stem cells (MSCs) closely interact with the immune system, and they are known to secrete inflammatory cytokines in response to stress stimuli. The biological function of MSC-derived inflammatory cytokines remains elusive. Here, we reveal that even under physiological conditions, MSCs produce and release a low level of tumor necrosis factor alpha (TNFα), which is unexpectedly required for preserving the self-renewal and differentiation of MSCs via autocrine/paracrine signaling. Furthermore, TNFα critically maintains MSC function in vivo during bone homeostasis. Mechanistically, we unexpectedly discovered that physiological levels of TNFα safeguard MSC homeostasis in a receptor-independent manner through mechanical force-driven endocytosis and that endocytosed TNFα binds to mammalian target of rapamycin (mTOR) complex 2 and restricts mTOR signaling. Importantly, inhibition of mTOR signaling by rapamycin serves as an effective osteoanabolic therapeutic strategy to protect against TNFα deficiency and mechanical unloading. Collectively, these findings unravel the physiological framework of the dynamic TNFα shuttle-based mTOR equilibrium that governs MSC and bone homeostasis.
url https://doi.org/10.1038/s41413-020-00117-x
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